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An error analysis of probabilistic fibre tracking methods: average curves optimization

机译:概率光纤跟踪方法的误差分析:平均曲线优化

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摘要

Fibre tractography using diffusion tensor imaging is a promising method for estimating the pathways of white matter tracts in the human brain. The success of fibre tracking methods ultimately depends upon the accuracy of the fibre tracking algorithms and the quality of the data. Uncertainty and its representation have an important role to play in fibre tractography methods to infer useful information from real world noisy diffusion weighted data. Probabilistic fibre tracking approaches have received considerable interest recently for resolving orientational uncertainties. In this study, an average curves approach was used to investigate the impact of SNR and tensor field geometry on the accuracy of three different types of probabilistic tracking algorithms. The accuracy was assessed using simulated data and a range of tract geometries. The average curves representations were employed to represent the optimal fibre path of probabilistic tracking curves. The results are compared with streamline tracking on both simulated and in vivo data.
机译:使用弥散张量成像的纤维束摄影术是一种有前途的方法,用于估计人脑中白质束的路径。光纤跟踪方法的成功最终取决于光纤跟踪算法的准确性和数据的质量。不确定度及其表示形式在纤维束摄影方法中起着重要的作用,以从现实世界中的噪声扩散加权数据中推断出有用的信息。概率光纤跟踪方法最近对于解决定向不确定性引起了极大的兴趣。在这项研究中,使用平均曲线方法来研究SNR和张量场几何形状对三种不同类型的概率跟踪算法的准确性的影响。使用模拟数据和一定范围的管道几何形状评估准确性。使用平均曲线表示法来表示概率跟踪曲线的最佳光纤路径。将结果与模拟和体内数据的流线跟踪进行比较。

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